A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs)

Size: px
Start display at page:

Download "A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs)"

Transcription

1 Advances in Networks 2017; 5(1): doi: /j.net ISSN: (Print); ISSN: (Online) A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs) Ibrahim M. M. Mohamed Department of Electrical Engineering, Faculty of Engineering, Omar Al-Mukhtar University, Al-beida, Libya address: engibrahim_2007@yahoo.com To cite this article: Ibrahim M. M. Mohamed. A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs). Advances in Networks. Vol. 5, No. 1, 2017, pp doi: /j.net Received: June 4, 2017; Accepted: July 14, 2017; Published: October 18, 2017 Abstract: The accelerated growth in the bandwidth demand emphasizes the necessity to evolve from the currently deployed gigabit-class passive optical networks (PONs) to the next-generation optical access networks (NG-OANs). Different architectures were proposed in the literature in order to create a NG-OAN that is able to fulfilling the aforementioned goal. In this paper, a time-division multiplexing (TDM)/dense wavelength-division multiplexing (DWDM) scheme was proposed. The proposed scheme is sought to satisfy the current and future anticipated bandwidth demands. The architecture we proposed was able to allow different bit rate optical line terminals OLTs to use the same frequency band, and transmit their services over a 24 km shared feeder to 16 passive remote terminals (PRTs) with 16 ONU group for each. Each group can accommodate up to 16 ONU, total of 256 ONU/PRT, resulting in overall system capacity 4096 ONU. The architecture also allows the independentupgradeability for each optical network terminal ONU. Keywords: Next-Generation Optical Access Networks NG-OAN, TDM-PONs, WDM-PONs, Hybrid TDM/WDM-PONs, Fiber-to-the-Home FTTH, Arrayed Waveguide Grating AWG 1. Introduction Gigabit-class passive optical networks PONs are being deployed in many countries nowadays because of their significant capacity as compared with the traditional copperbased access networks, which allows the delivery of broadband services, such as voice over Internet Protocol (VoIP), and video on demand (VoD). The two main gigabitclass PONs are the Ethernet PON (E-PON, [IEEE802.3ah]) and the gigabit PON (G-PON, [ITU-T G.984]), standardized by the Institute of Electrical and Electronics Engineers (IEEE) and the International Telecommunications Union s Telecommunication Standardization Sector (ITU-T) respectively. Although gigabit-class PONs were envisioned as an ultimate solution to the increased bandwidth demand problem, since they provide an adequate bandwidth segment to each user as compared with the copper-based access networks, their capacity is going to be exhausted as soon as much more bandwidth-hungry services, such as highdefinition television (HDTV), and 3D television (3D-TV) become available in the near future. Thus an evolution from the current PONs to the NG-OANs becomes a matter of urgency. Different architectures were proposed in the literature in order to create a NG-OAN scheme that is able to fulfill the foregoing requirement. For example, IEEE and ITU-T ratified their standards of high speed TDM-PONs, (IEEE 802.3av, [10G-EPON], and ITU-T G.987, [XG-PON]) in 2009 and 2010 respectively [1, 2]. 10G-EPON specifies a symmetric 10-Gbps for both the downstream and upstream traffic, and an asymmetric 10-Gbps for downstream traffic and 1-Gbps for upstream traffic. Similar to the 10G-EPON, XG-PON specifies a symmetric 10 Gbps for both the downstream and upstream traffic. However, it introduces an asymmetric 10 Gbps for downstream traffic and 2.5 Gbps for upstream traffic. Because it is expected for optical links to lose several dbs of their budget when bit rate increased to 10 Gbps, both the 10G-EPON and XG-PON recommend the use of forward error correction (FEC) to earn extra db margin. In all of the aforementioned PONs, service is provided using time division multiplexing (TDM) technology in which a point-to-multipoint (P2MP) connection is established between one optical line terminal (OLT) and several optical network units (ONUs). The main disadvantage of the TDM- PONs is their traffic-sharing nature, which poses a real

2 Advances in Networks 2017; 5(1): challenge to future upgrades. One of the potential candidates for next-generation optical access NGOA is the Hybrid TDM/WDM-PONs. TDM/WDM-PONs were proposed to exploit both, the high speed feature offered by the TDM- PONs, and the large number of wavelength counts provided by the WDM-PONs. A hybrid TDM/WDM-PON can be categorized according to the wavelength grid used as either a hybrid TDM/CWDM-PON or a hybrid TDM/DWDM-PON. In the hybrid TDM/CWDM-PON, a 20nm wavelength spacing is used, while in the hybrid TDM/DWDM-PON, a 0.8 nm or 0.4 nm wavelength spacing is used. The first commercial colorless gigabit TDM/WDM-PON using a remote protocol terminator was proposed and experimentally demonstrated in [3]. It has been used by Korea Telecom since March The system was able to provide a high speed fiber-to-the-home service and supporting up to 512 users over a single feeder fiber. The next-generation passive optical network stage 2 (NG-PON2) project was established in 2011 by the full service access network (FSAN) group. The project seeks to exceed 10 Gbps bit rate in the optical access network. The time- and wavelength-division multiplexed passive optical network (TWDM-PON) was chosen in 2012 by the FSAN group as a significant candidate to be the NG- PON2 technology. TWDM-PON increases PON data rate by multiplexing multiple PONs. As mentioned above, an XG- PON system offers the access rates of 10 Gbps in downstream and 2.5 Gbps in upstream. A scheme of four pairs of wavelengths TWDM-PON is able to multiplexing a four XG-PONs which leads to provide 40 Gbps and 10 Gbps in downstream and upstream, respectively. In this paper, we proposed a new PON scheme. The design comes after studying the characteristics of different optical devices such as, arrayed waveguide gratings (AWGs) and power splitters (PSs), and the potentiality of incorporating these optical devices together in one architecture for development a flexible and scalable TDM/DWDM-based PON. Incorporating the AWG could realize the frequency re-use approach, which allows for coexistence among different service providers, leads to increases the utilization of the fiber plant and thus increases the efficiency, and facilitates the independent-upgradeability approach. It also leads to enable handling the upstream and downstream traffic through the same input/output ports. The paper is organized as follows: Section 2 provides an overview of AWG architecture and properties. Section 3 presents the proposal PON. Section 4 is devoted for simulation results and discussions. Section 5 concludes the paper. 2. AWG Architecture and Properties An N N Arrayed Waveguide grating (N N AWG) is a versatile optical device that can be used as multiplexer, demultiplexer, or router [4-6]. It is a generalization of the 2 2 Mach-Zehnder (MZ) interferometer multiplexer. It consists of two identical N M free propagation regions, also called slabs. The two slabs are connected using an array of M waveguides in such a way that the output ports of the first slab are connected with the input ports of the second slab. The length of any adjacent waveguides in the waveguides array region differs by a constant value L, which forms a Mach-Zehnder-type grating. For a pure multiplexer, Nin = n and Nout = 1, while for a pure demultiplexer, Nin = 1 and N = n, where n represents the number of wavelengths in an optical signal. In the case of a router, Nin = Nout = n. Figure 1 shows a schematic diagram of an N N AWG. Figure 1. N N AWG architecture. To clarify how AWG works, we consider the situation in which it functions as a demultiplexer. In this case, if an optical signal carrying multiple-wavelengths (λ1-λn), where N = n propagates in the first star coupler (slab), it will arrive at the input of the second star coupler with different phases due to the different waveguide lengths, which results in each

3 24 Ibrahim M. M. Mohamed: A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs) wavelength being directed to a specific output port. Based on the property of reciprocity, an AWG can also work as a demultiplexer in the opposite direction [7]. Kaneko et al proposed an AWG with stable performance over a wide range of temperatures in one of their previous studies [8]. A silicon-based AWG model with an insertion loss of 1.26 db was developed by the company C2V. However, the main drawback with this model was its large size. Janvit Tippinit and Weerachai Asawamethapant spent considerable efforts and proposed a smaller AWG with a lower insertion loss of 1.09 db [9]. An N N AWG has two main properties [10]. These properties are the so-called wavelength cyclic property (WCP) and free spectral range property (FSRP), respectively. In WCP, a shift to the input port of the N N AWG is followed by an opposite shift to the output port. Whereas in the FSRP, if two different wavelengths incident on a common input port of the N N AWG, they will exit from a common output port provided that they are separated by the FSR of that N N AWG. Figure 2 (a) and (b) show schematic diagrams of theses properties. Figure 2. (a) and (b). Schematic diagrams WC and FSR properties. 3. The Proposed Architecture We proposed a hybrid TDM/DWDM scheme. The architecture we proposed which shown in Figure 3 was sought to: create a scalable and flexible PON, satisfy the current and future anticipated bandwidth demands, and increase the efficiency in PON networks. As mentioned above, the design was based on studying the characteristics of different optical devices such as, arrayed waveguide gratings (AWGs), and power splitters (PSs), and the potentiality to incorporate them together in one architecture for development a TDM/DWDM-PON scheme. The AWG was incorporated to exploit its properties of wavelength cyclic (WC), and free spectral range (FSR). Figure 3. The proposed PON (TDM-based PRT is considered).

4 Advances in Networks 2017; 5(1): According to the wavelength cyclic property (WCP), if number k of replicated spectrum (λ1-λm) sent by k OLTs incident on each input port of an NxN AWG, where k = m = N, they will be dimultiplexed through the output ports of the N N AWG without being overlapped. This would enable several OLTs to handle the same frequency band, which realizes the approach of frequency re-use and thus creates coexistence among different OLTs and increase the utilization of the fiber. According to the free spectral range property (FSRP), if two different wavelengths incident on a common input port of the N N AWG, they will exit from a common output port provided that they are separated by the FSR of that N N AWG. This would enable each ONU to transmit and receive its data via the same input/output ports. Since each ONU in the proposed PON receives a replica of the same aggregation (λ1- λn), and due to each wavelength within the received aggregation refers to different OLT, it becomes possible for each ONU to upgrade its bit rate service independently by using a suitable filter with out affecting the legacy system (achievable flexibility). For further increase in the capacity, we propose to design a hybrid TDM/DWDM-based PRT by incorporating a WDM-DeMux in the PRT unit prior to the power splitter. Figure 4 shows the proposed architecture when hybrid TDM/DWDM-based PRT is considered. Figure 4. The proposed PON (Hybrid TDM/DWDM-based PRT is considered). In this case, although it is expected for the capacity of the proposed PON system to increase due to each wavelength will be used by a group of OUN, for example, if 16 wavelength is demultiplexed at the PRT and the power of each is splitted among 16 ONU, the capacity of each ONU group will reach = 256 ONUs. It is expected for the flexibility of the proposed PON system to reduce, i.e. the architecture will suffers the lack of independentupgradeability, for example, if one subscriber wants to change a PON service, the agreement of the other subscribers under the same wavelength as that of the subscriber is required. However the approach we adopt in designing the PRT leads to avoid such a limitation. In this approach, the PRT was designed in such a way it can support several bit rate PON groups with a specific wavelength for each. Thus, it becomes possible for each ONU to move to another PON group and upgrade its bit rate service by using a suitable filter and performing a simple reconnection at the PRT. Figures 5 (a) and (b) clarify this process where an upgrade from λ1 to λ16 is assumed. This leads to confirm the necessity of using colorless ONUs. In this context, several proposed colorless ONUs can be found in the literature [11]. As it has been reported that one of the main features that may define a highly scalable new-generation PON is the ability to evolve without affecting legacy systems [12], the concept of scalability of the proposed PON consists in its ability to provide coexistence among different OLTs. It also refers to the increase in the fiber plant utilization. This can be seen obviously at the central office site where several OLTs can share a common fiber exploiting the frequency re-use approach provided by the AWG. Moreover, the increased number of user expected by the proposed PON architecture could also characterize the design as a scalable approach.

5 26 Ibrahim M. M. Mohamed: A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs) Figure 5. (a) and (b). Upgradeability process corresponding to the proposed architecture Cost Consideration It is expected for the proposed configuration to be a highly cost one due to it is required from each OLT in the architecture to produce an identical multi-wavelength optical signal (λ1-λm). I.e. a number n of optical sources is required in each OLT, which leads to a large number of optical sources being required for the whole system (m k), where m, and k represent the number of wavelengths in each identical multiwavelength optical signal and the number of OLTs used, respectively. For example if a number of eight OLTs is used, and each of which transmitting an identical multiplewavelength optical signal that contains eight wavelengths, the number of the required optical sources will be 64, which significantly increase the cost. To reduce the cost of the proposed architecture, a Centralized Wavelength Producing unit CWP was designed and included in the proposed scheme. In the CWP unit, a number of h centralized optical sources along with a number i of PSs are used to produce a number of h i identical aggregations, where h = m, and i = k instead of using n m optical sources. For example if a number of eight identical multiple-wavelengths signal with eight wavelengths for each are required (8 8 = 64 wavelengths), and it is required for each wavelength to be sent at 0 dbm, one can use eight centralized optical wavelength sources with 10 dbm for each along with eight PSs (i = 8) with 1 db insertion loss for each according to the following formula P (source/out) = P (centralized/source) - 10 Log 10 (j) - Splitter insertion loss Where the term 10 Log 10 (j) represents the splitting loss imposed by a splitter containing j output ports. Figure 6 shows a CWP unit that has been simulated by using the Opti System software which can centrally produce 8 identical multiple-wavelength optical signals at its output. Figure 6. A CWP unit with eight identical multi-wavelength optical signals are considered at its output.

6 Advances in Networks 2017; 5(1): Coexistence with Previous PON Generations To discuss the possibility of coexistence with previous generations of PONs in the legacy optical distribution network (ODN), one may look at the wavelength plan options of the TWDM-PON. In fact, there are various options of the TWDM-PON wavelength plan [13]. The first option is based on the re-use of XG-PON wavelength bands. This option defines a finer grid within the already defined bands for XG-PON. As shown in Figure 7 (a), the XG-PON wavelength re-use option is compatible with the G-PON and the radio frequency (RF) video. However, it blocks the standardized XG-PON. Figure 7. (a). The first option (XG-PON wavelength re-use). The second option is based on the re-definition of the c- band such that it supports both the upstream and downstream wavelengths. As shown in Figure 7 (b), the c-band wavelength plan is compatible with G-PON and XG-PON. However, it blocks the RF video. The third option is based on a mixture of the aforementioned wavelength plans. It defines the L-minus band to support the downstream channels whereas; it defines the C-minus band to support the upstream channels. The upstream channels and the downstream channels are similar to those have been defined in the C-band wavelength plan and the XG-PON wavelength re-use plan, respectively. As shown in Figure 7 (c), the C-minus/L-minus band wavelength plan is compatible to the G-PON and the FR video. However, it blocks the XG-PON downstream channels. Based on the above discussion, and since the proposed architecture was designed in C band, we deduce that the proposed architecture can allow the coexistence with G-PON and XG-PON in the case in which C-minus/L-minus band wavelength plan is considered. Figure 7. (b). The second option (C-band wavelength plan). The architecture could allow the coexistence with G-PON, TWDM-PON, and RF video if the XG-PON wavelength reuse plan is consider. It also could allow the coexistence with G-PON, and TWDM-PON if the C-minus/L-minus band wavelength plan is considered. However, a slight change in the wavelength plan of the design is required in the latter case. For example, a shift of 1.5 THz can be suggested making the wavelength plan of the design occupies the range between THz THz instead of that have been adopted (193.1 THz THz). Based on the feature of independent-upgradeability that has been discussed in section 3, the proposed architecture could achieve stacked aggregation of more than 40 Gbps by encouraging each OLT to upgrade its service to 10 Gbps. Thus, the confliction with the second wavelength plan option of the TWDM-PON does not seem a real limitation due to the proposed architecture could achieve a bit rate of more than that has been achieved in a TWDM-PON. Figure 7. (c). The third option (C-minus/L-minus wavelength plan).

7 28 Ibrahim M. M. Mohamed: A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs) 4. Simulation Results and Discussions Tow simulations were conducted in this study. In the first simulation, results were obtained where a TDM-based PRT is considered, whereas in the second simulation results were obtained where a hybrid TDM/DWDM-based PRT is considered. In both simulations, four different bit rate OLTs are considered First Simulation (TDM-Based PRT Is Considered) This part of simulation is divided into two subsections. In the first subsection, three different bit rate OLTs are considered (622 Mbps, 1 Gbps, and 2.5 Gbps). While in the second subsection, 10 Gbps OLT is included TDM-based PRT (622 Mbps, 1 Gbps, and 2.5 Gbps Bit Rates Are Considered) In this part of simulation, three different bit rate OLTs were employed, each of which has a unique NRZ Pseudo data, (622 Mbps, 1 Gbps and 2.5 Gbps). Theses NRZ Pseudo Random data were transmitted simultaneously at 0 dbm. A AWG with 1.26 db insertion loss and 100 GHz frequency spacing was assigned. A 1 16 Power Splitter with db Splitting/insertion loss was assigned. A frequency range of 1.5 THz with 100 GHz frequency spacing (193.1 THz THz), which represents a multiple-wavelength optical signal that carries sixteen wavelengths was allocated for each OLT. Variable length single-mode fiber (feeder fiber) with 0.2 db/km attenuation and ps/(nm. km) dispersion was considered. A P-type intrinsic N-type (PIN) photodiode was used for signal reception due to its low biasing voltage and low cost. A BER of 10-9 was chosen as a reference for operational requirement. Figure 8 shows BER versus feeder fiber at 0 dbm and three different bit rates, 622 Mbps, 1 Gbps and 2.5 Gbps. As can be seen obviously in the graph, the BER increases as feeder fiber increases until it reaches 10-9 at 34 km and 2.5 Gbps, 37 km and 1 Gbps, and 39 km and 622 Mbps, and then continuous to increase as the feeder fiber increases. Based on this result, we conclude that transmission is possible over the proposed PON until 34 km because it is the lowest distance obtained for the simultaneous transmission TDM-Based PRT (10 Gbps Is Included) In this part of simulation, a 10 Gbps OLT was included. To compensate for losses expected due to the increased bit rate, we decided to: increase the input power to 2 dbm, use an optimized gain Avalanche Photodiode (APD) instead of PIN photodiode for signal reception, and recommend the use of forward error correction code (FEC). A BER of was chosen as a reference for operational requirement because it represents the pre-fec BER required to achieve a post-fec BER lower than Figure 9 shows BER versus APD gain (M) at 10 Gbps, 34 km feeder, and 2 dbm, where a BER value of which is lower than that is required for the pre-fec was achieved at M = Second Simulation (Hybrid TDM/DWDM-Based PRT Is Considered) Similar to section 5.1, this part of simulation is divided into two subsections. In the first subsection, three different bit rate OLTs are considered (622 Mbps, 1 Gbps, and 2.5 Gbps). While in the second subsection, 10 Gbps OLT is included Hybrid TDM/DWDM-Based PRT (622 Mbps, 1 Gbps, and 2.5 Gbps Bit Rates Are Considered) Figure 9. BER versus APD gain (M) at 10 Gbps, 34 km, and 2 dbm (TDMbased PRT is considered). Figure 8. BER versus fiber length at 0 dbm and different Bit rates (TDMbased PRT is considered). Figure 10. BER versus fiber length at 0 dbm and different Bit rates (Hybrid TDM/DWDM-based PRT is considered).

8 Advances in Networks 2017; 5(1): In this part of simulation, all components and parameters used are identical with that have been used in section Similarly, three different bit rate OLTs were employed, (622 Mbps, 1 Gbps and 2.5 Gbps). A WDM-Demux with 1.26 db insertion was incorporated in the PRT prior to the PS. Figure 10 shows BER versus feeder fiber at 0 dbm and three different bit rates, 622 Mbps, 1 Gbps and 2.5 Gbps. As can be seen obviously in the graph, the BER increases as feeder fiber increases until it reaches 10-9 at 24 km and 2.5 Gbps, 30 km and 1 Gbps, and 33 km and 622 Mbps, and then continuous to increase as the feeder fiber increases. Based on this result, we conclude that transmission is possible over the proposed PON until 24 km because it is the lowest distance obtained for the simultaneous transmission Hybrid TDM/DWDM-Based PRT (10 Gbps Is Included) In this part of simulation, all components and parameters used are identical with that have been used in section Similarly, a 10 Gbps OLT was included. A WDM-Demux with 1.26 db insertion was incorporated in the PRT prior to the PS. Figure 11 shows BER versus APD gain (M) at 10 Gbps, 24 km feeder, and 2dBm, where a BER value of which is lower than that is required for the pre- FEC was achieved at M = 6. common fiber (Achievable Co-Existence, and Increasable Fiber Utilization). (C). Since each received wavelength refers to an individual OLT, each ONU can move to higher bit rate service simply by using a suitable filter and simple reconnection with out affecting the legacy ones (Achievable Independent-Upgradeability). This feature of Independentupgradeability encourages each OLT in the proposed TDM/DWDM-PON to upgrade its bit rate service to 10 Gbps, which leads to achieve a stacked bit rate of more than 40 Gbps. The architecture was designed to work in C band ( nm), which allows for co-existence with the commercially deployed G-PONs, and XG-PONs as they were characterized as working in different band segments. i.e. ([ ] nm / [ ] nm, and [ ] nm / [ ] nm for G-PONs, and XG-PONs US/DS transmission, respectively. Moreover, working in the C band allows the use of the erbium-doped fiber amplifiers EDFAs if future necessity arises. As mentioned above, the Independent-upgradeability feature leads to achieve a stacked aggregation of 40 Gbps or more, which is similar or higher than that has been achieved in the TWDM-PON. Thus, the confliction with the wavelength plan of the TWDM-PON does not seem a real limitation. As mentioned above, working in the C band allows the use of the EDFAs. Since EDFAs are protected against the cross-talk effect in the case in which a simultaneous amplification is required, provided that a frequency of 10 KHz or higher is used for frequency spacing, which suits our design where 100 GHz was chosen for DWDM spacing, a future plan on this topic is to incorporate the EDFA in the design for further increase in the transmission distance and number of accommodated ONUs. However incorporating such amplifiers is not straight forward, i.e. they should be optimized before being incorporated in the design. Thus our future plan will include the optimization of the EDFA in terms of its power pump, EDF length, overlap factor, erbium ions concentration, and configuration & pumping wavelength used. Figure 11. BER versus APD gain (M) at 10 Gbps, 24 kmd, and 2 dbm (Hybrid TDM/DWDM-based PRT is considered). 5. Conclusions and Future Work In this paper, we proposed a hybrid TDM/DWDM-PON scheme. The architecture we proposed was able to allow different bit rate OLTs (622 Mbps, 1 G bps, 2.5 Gbps, and 10 Gbps) to use a common frequency band, and transmit their services over a 24 km shared feeder to 16 passive remote terminals (PRTs) with 16 ONU group for each. Each group can accommodate up to 16 ONU, total of 256 ONU/PRT, resulting in overall system capacity 4096 ONU. Incorporating AWG offers the following opportunities: (A). The architecture enables each ONU to handle its downstream and upstream traffic through the same input/output ports. (B). The architecture is able to allow different bit rate OLTs to use the same frequency band and handle their traffic over a References [1] Keiji Tanaka et al, IEEE 802.3av 10G-EPON Standardization and Its Research and Development Status, Journal of Lightwave Technology, vol. 28, pp , [2] ITU-T Recommendation G.987 series, 10-Gigabit-capable passive optical network (XG-PON) systems, [3] Jie Hyun Lee, at al. First Commercial Deployment of a Colorless Gigabit WDM/TDM Hybrid PON System Using Remote Protocol Terminator, Lightwave Technology, Journal of, vol. 28, pp , [4] M. K. Smit, New focusing and dispersive planar component based on an optical phased array, Electron. Lett, vol. 24, pp , [5] Takahashi et al, Polarization-Insensitive Arrayed-Waveguide Wavelength Multiplexer with Birefringence Compensating Film. IEEE PHOTONICS TECHNOLOGY LE'ITERS, VOL. 5, NO. 6, JUNE 1993.

9 30 Ibrahim M. M. Mohamed: A Frequency Reuse-Based Design for Flexible and Scalable Passive Optical Networks (PONs) [6] Inoue et al, Polarization mode converter with polyimide half waveplate in silica-based planar lightwave circuits, IEEE Photon. Technol. Lett, vol. 6, pp , [7] C. R. Giles, M. Newhouse, J. Wright, and K. Hagimoto, Special Issue on System and Network Applications of Optical Amplifiers, J. Lightwave Tech, vol. 13, May [8] A. Kaneko, S. Kamei, Y. Inoue, H. Takahashi, and A. Sugita, Athermal silica-based arrayed-waveguide grating (AWG) multi/demultiplexers with new low loss groove design, Elect. Lett, vol. 36, no. 4, pp , Feb [9] Tippinit J and Asawamethapant W, Optical properties improvement on A WG Achieved by Adding Transmission Star Couplers into FPRl Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON), th International Conference, May 2012, /$ IEEE. [10] A. Kaneko, T. Goh, H. Yamada, T. Tanaka, and L. Ogawa, Design and applications of silica-based planar lightwave circuits, IEEE Journal of Selected Topics in Quantum Electronics, vol. 5, no. 5, pp , Sept/Oct [11] Josep Prat et al, Next-Generation FTTH Passive Optical Networks, Springer Science, Business Media B. V, [12] J. i. Kani, Enabling Technologies for Future Scalable and Flexible WDM-PON and WDM/TDM-PON Systems, IEEE Journal of Selected Topics in Quantum Electronics, vol. 16, pp , [13] Yuanqiu Luo et al, Time - and Wavelength-Division Multiplexed Passive Optical Network (TWDM-PON) for Next-Generation PON Stage 2 (NG-PON2), JOURNAL OF LIGHTWAVE TECHNOLOGY, VOL. 31, NO. 4, FEBRUARY 15, 2013.

PERFORMANCE EVALUATION OF GB/S BIDIRECTIONAL DWDM PASSIVE OPTICAL NETWORK BASED ON CYCLIC AWG

PERFORMANCE EVALUATION OF GB/S BIDIRECTIONAL DWDM PASSIVE OPTICAL NETWORK BASED ON CYCLIC AWG http:// PERFORMANCE EVALUATION OF 1.25 16 GB/S BIDIRECTIONAL DWDM PASSIVE OPTICAL NETWORK BASED ON CYCLIC AWG Arashdeep Kaur 1, Ramandeep Kaur 2 1 Student, M.Tech, Department of Electronics and Communication

More information

An Amplified WDM-PON Using Broadband Light Source Seeded Optical Sources and a Novel Bidirectional Reach Extender

An Amplified WDM-PON Using Broadband Light Source Seeded Optical Sources and a Novel Bidirectional Reach Extender Journal of the Optical Society of Korea Vol. 15, No. 3, September 2011, pp. 222-226 DOI: http://dx.doi.org/10.3807/josk.2011.15.3.222 An Amplified WDM-PON Using Broadband Light Source Seeded Optical Sources

More information

Novel Design of Long Reach WDM-PON by using Directly Modulated RSOA

Novel Design of Long Reach WDM-PON by using Directly Modulated RSOA e-issn 2455 1392 Volume 2 Issue 6, June 2016 pp. 283 289 Scientific Journal Impact Factor : 3.468 http://www.ijcter.com Novel Design of Long Reach WDM-PON by using Directly Modulated RSOA Prof. Pergad

More information

Design and Performance Evaluation of 20 GB/s Bidirectional DWDM Passive Optical Network Based on Array Waveguide Gratings

Design and Performance Evaluation of 20 GB/s Bidirectional DWDM Passive Optical Network Based on Array Waveguide Gratings ISSN: 2278 909X International Journal of Advanced Research in Electronics and Communication Engineering (IJARECE) Volume 2, Issue 9, September 2013 Design and Performance Evaluation of 20 GB/s Bidirectional

More information

Life Science Journal 2013;10(4)

Life Science Journal 2013;10(4) Life Science Journal 213;1(4) http://www.lifesciencesite.com All Optical Packet Routing using SOA and AWG to Support Multi Rate 2. Gbps and 1 Gbps in TWDM PON System M.S. Salleh 1, A.S.M. Supa at 2, S.M.

More information

Colorless Amplified WDM-PON Employing Broadband Light Source Seeded Optical Sources and Channel-by-Channel Dispersion Compensators for >100 km Reach

Colorless Amplified WDM-PON Employing Broadband Light Source Seeded Optical Sources and Channel-by-Channel Dispersion Compensators for >100 km Reach Journal of the Optical Society of Korea Vol. 18, No. 5, October 014, pp. 46-441 ISSN: 16-4776(Print) / ISSN: 09-6885(Online) DOI: http://dx.doi.org/10.807/josk.014.18.5.46 Colorless Amplified WDM-PON Employing

More information

Wavelength Division Multiplexing Passive Optical Network (WDM-PON) technologies for future access networks

Wavelength Division Multiplexing Passive Optical Network (WDM-PON) technologies for future access networks JOURNAL OF ENGINEERING RESEARCH AND TECHNOLOGY, VOLUME 2, ISSUE 1, MARCH 2015 Wavelength Division Multiplexing Passive Optical Network (WDM-PON) technologies for future access networks Fady I. El-Nahal

More information

Mahendra Kumar1 Navneet Agrawal2

Mahendra Kumar1 Navneet Agrawal2 International Journal of Scientific & Engineering Research, Volume 6, Issue 9, September-2015 1202 Performance Enhancement of DCF Based Wavelength Division Multiplexed Passive Optical Network (WDM-PON)

More information

WDM-PON Delivering 5-Gbps Downstream/2.5-Gbps Upstream Data

WDM-PON Delivering 5-Gbps Downstream/2.5-Gbps Upstream Data WDM-PON Delivering 5-Gbps Downstream/2.5-Gbps Upstream Data Balaji Raobawale P. G. Department M.B.E.S. College of Engineering, Ambajogai, India S. K. Sudhansu P. G. Department M.B.E.S. College of Engineering,

More information

Module 19 : WDM Components

Module 19 : WDM Components Module 19 : WDM Components Lecture : WDM Components - I Part - I Objectives In this lecture you will learn the following WDM Components Optical Couplers Optical Amplifiers Multiplexers (MUX) Insertion

More information

Downstream Transmission in a WDM-PON System Using a Multiwavelength SOA-Based Fiber Ring Laser Source

Downstream Transmission in a WDM-PON System Using a Multiwavelength SOA-Based Fiber Ring Laser Source JOURNAL OF L A TEX CLASS FILES, VOL. X, NO. XX, XXXX XXX 1 Downstream Transmission in a WDM-PON System Using a Multiwavelength SOA-Based Fiber Ring Laser Source Jérôme Vasseur, Jianjun Yu Senior Member,

More information

A HIGH SPEED WDM PON FOR DOWNSTREAM DPSK ASK SIGNALS AND UPSTREAM OOK SIGNAL WITH BROADCAST CAPABILTY

A HIGH SPEED WDM PON FOR DOWNSTREAM DPSK ASK SIGNALS AND UPSTREAM OOK SIGNAL WITH BROADCAST CAPABILTY A HIGH SPEED WDM PON FOR DOWNSTREAM DPSK ASK SIGNALS AND UPSTREAM OOK SIGNAL WITH BROADCAST CAPABILTY 1 AAMIR KHAN, 2 ANITA CHOPRA 1 Department of Information Technology, Suresh Gyan Vihar University,

More information

A WDM passive optical network enabling multicasting with color-free ONUs

A WDM passive optical network enabling multicasting with color-free ONUs A WDM passive optical network enabling multicasting with color-free ONUs Yue Tian, Qingjiang Chang, and Yikai Su * State Key Laboratory of Advanced Optical Communication Systems and Networks, Department

More information

Wavelength-Enhanced Passive Optical Networks with Extended Reach

Wavelength-Enhanced Passive Optical Networks with Extended Reach Wavelength-Enhanced Passive Optical Networks with Extended Reach Ken Reichmann and Pat Iannone Optical Systems Research AT&T Labs, Middletown NJ Thanks to Han Hyub Lee, Xiang Zhou, and Pete Magill Wavelength-Enhanced

More information

ANALYSIS OF BIDIRECTIONAL LONG REACH WDM PON

ANALYSIS OF BIDIRECTIONAL LONG REACH WDM PON ANALYSIS OF BIDIRECTIONAL LONG REACH WDM PON Surya M, Gokul P.G, mohansurya99@gmail.com Abstract Passive Optical Network (PON) implementing WDM plays a vital role in telecommunication system, due to its

More information

Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian

Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian m.karbassian@arizona.edu Contents Optical Communications: Review Optical Communications and Photonics Why Photonics?

More information

Evolution from TDM-PONs to Next-Generation PONs

Evolution from TDM-PONs to Next-Generation PONs Evolution from TDM-PONs to Next-Generation PONs Ki-Man Choi, Jong-Hoon Lee, and Chang-Hee Lee Department of Electrical Engineering and Computer Science, Korea Advanced Institute of Science and Technology,

More information

Performance Comparison of Pre-, Post-, and Symmetrical Dispersion Compensation for 96 x 40 Gb/s DWDM System using DCF

Performance Comparison of Pre-, Post-, and Symmetrical Dispersion Compensation for 96 x 40 Gb/s DWDM System using DCF Performance Comparison of Pre-, Post-, and Symmetrical Dispersion Compensation for 96 x 40 Gb/s DWDM System using Sabina #1, Manpreet Kaur *2 # M.Tech(Scholar) & Department of Electronics & Communication

More information

PERFORMANCE ANALYSIS OF WDM PONS BASED ON FP-LD USING RZ-OOK AND NRZ-OOK

PERFORMANCE ANALYSIS OF WDM PONS BASED ON FP-LD USING RZ-OOK AND NRZ-OOK PERFORMANCE ANALYSIS OF WDM PONS BASED ON FP-LD USING RZ-OOK AND NRZ-OOK Mukesh Kumar 1, Dr. Ajay Pal Singh 2 Department of Electronics and Communication Engineering, Sant Longowal Institute of Engineering

More information

Radio over Fiber Technology for Investigation of Hybrid Passive Optical Networks

Radio over Fiber Technology for Investigation of Hybrid Passive Optical Networks I J C T A, 9(8), 2016, pp. 3451-3457 International Science Press Radio over Fiber Technology for Investigation of Hybrid Passive Optical Networks P. Sangeetha* and I. Muthumani ABSTRACT Multiplexed PONs

More information

Optical Fiber Technology

Optical Fiber Technology Optical Fiber Technology 18 (2012) 29 33 Contents lists available at SciVerse ScienceDirect Optical Fiber Technology www.elsevier.com/locate/yofte A novel WDM passive optical network architecture supporting

More information

Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian

Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian Optical Communications and Networks - Review and Evolution (OPTI 500) Massoud Karbassian m.karbassian@arizona.edu Contents Optical Communications: Review Optical Communications and Photonics Why Photonics?

More information

Performance Analysis of WDM RoF-EPON Link with and without DCF and FBG

Performance Analysis of WDM RoF-EPON Link with and without DCF and FBG Optics and Photonics Journal, 2013, 3, 163-168 http://dx.doi.org/10.4236/opj.2013.32027 Published Online June 2013 (http://www.scirp.org/journal/opj) Performance Analysis of WDM RoF-EPON Link with and

More information

Microwave and Optical Technology Letters. Minhui Yan, Qing-Yang Xu 1, Chih-Hung Chen, Wei-Ping Huang, and Xiaobin Hong

Microwave and Optical Technology Letters. Minhui Yan, Qing-Yang Xu 1, Chih-Hung Chen, Wei-Ping Huang, and Xiaobin Hong Page of 0 0 0 0 0 0 Schemes of Optical Power Splitter Nodes for Direct ONU-ONU Intercommunication Minhui Yan, Qing-Yang Xu, Chih-Hung Chen, Wei-Ping Huang, and Xiaobin Hong Department of Electrical and

More information

Investigation of Performance Analysis of EDFA Amplifier. Using Different Pump Wavelengths and Powers

Investigation of Performance Analysis of EDFA Amplifier. Using Different Pump Wavelengths and Powers Investigation of Performance Analysis of EDFA Amplifier Using Different Pump Wavelengths and Powers Ramandeep Kaur, Parkirti, Rajandeep Singh ABSTRACT In this paper, an investigation of the performance

More information

Implementation of Dense Wavelength Division Multiplexing FBG

Implementation of Dense Wavelength Division Multiplexing FBG AUSTRALIAN JOURNAL OF BASIC AND APPLIED SCIENCES ISSN:1991-8178 EISSN: 2309-8414 Journal home page: www.ajbasweb.com Implementation of Dense Wavelength Division Multiplexing Network with FBG 1 J. Sharmila

More information

Study of Orthogonal Modulation Schemes for Passive. Optical Access Networks.

Study of Orthogonal Modulation Schemes for Passive. Optical Access Networks. Study of Orthogonal Modulation Schemes for Passive Optical Access Networks. Nikolaos Skarmoutsos National and Kapodistrian University of Athens Department of Informatics and Telecommunications nskarm@di.uoa.gr

More information

Spectrum Sliced WDM-PON System as Energy Efficient Solution for Optical Access Systems

Spectrum Sliced WDM-PON System as Energy Efficient Solution for Optical Access Systems Spectrum Sliced WDM-PON System as Energy Efficient Solution for Optical Access Systems Vjaceslavs Bobrovs, Sandis Spolitis, Ilja Trifonovs, Girts Ivanovs Institute of Telecommunications Riga Technical

More information

Implementing of High Capacity Tbps DWDM System Optical Network

Implementing of High Capacity Tbps DWDM System Optical Network , pp. 211-218 http://dx.doi.org/10.14257/ijfgcn.2016.9.6.20 Implementing of High Capacity Tbps DWDM System Optical Network Daleep Singh Sekhon *, Harmandar Kaur Deptt.of ECE, GNDU Regional Campus, Jalandhar,Punjab,India

More information

Comparative Analysis Of Different Dispersion Compensation Techniques On 40 Gbps Dwdm System

Comparative Analysis Of Different Dispersion Compensation Techniques On 40 Gbps Dwdm System INTERNATIONAL JOURNAL OF TECHNOLOGY ENHANCEMENTS AND EMERGING ENGINEERING RESEARCH, VOL 3, ISSUE 06 34 Comparative Analysis Of Different Dispersion Compensation Techniques On 40 Gbps Dwdm System Meenakshi,

More information

RSOA BASED 10G WDM FOR LONG REACH PON USING MANCHESTER CODING FOR REMODULATION.

RSOA BASED 10G WDM FOR LONG REACH PON USING MANCHESTER CODING FOR REMODULATION. RSOA BASED 10G WDM FOR LONG REACH PON USING MANCHESTER CODING FOR REMODULATION. S RAJALAKSHMI SENSE, VIT University, Vellore, Tamil Nadu 632014, India srajalakshmi@vit.ac.in http://www.vit.ac.in ANKIT

More information

Gigabit Transmission in 60-GHz-Band Using Optical Frequency Up-Conversion by Semiconductor Optical Amplifier and Photodiode Configuration

Gigabit Transmission in 60-GHz-Band Using Optical Frequency Up-Conversion by Semiconductor Optical Amplifier and Photodiode Configuration 22 Gigabit Transmission in 60-GHz-Band Using Optical Frequency Up-Conversion by Semiconductor Optical Amplifier and Photodiode Configuration Jun-Hyuk Seo, and Woo-Young Choi Department of Electrical and

More information

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 26

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 26 FIBER OPTICS Prof. R.K. Shevgaonkar Department of Electrical Engineering Indian Institute of Technology, Bombay Lecture: 26 Wavelength Division Multiplexed (WDM) Systems Fiber Optics, Prof. R.K. Shevgaonkar,

More information

Analysis of Gain and NF using Raman and hybrid RFA-EDFA

Analysis of Gain and NF using Raman and hybrid RFA-EDFA Analysis of Gain and NF using Raman and hybrid RFA-EDFA Abdallah M. Hassan 1, Ashraf Aboshosha 2, Mohamed B. El_Mashade 3 Electrical Engineering Dept., Faculty of Engineering, Al-Azhar University, Nasr

More information

UNIT - 7 WDM CONCEPTS AND COMPONENTS

UNIT - 7 WDM CONCEPTS AND COMPONENTS UNIT - 7 WDM CONCEPTS AND COMPONENTS WDM concepts, overview of WDM operation principles, WDM standards, Mach-Zehender interferometer, multiplexer, Isolators and circulators, direct thin film filters, active

More information

International Journal of Emerging Technology and Advanced Engineering Website: (ISSN , Volume 2, Issue 6, June 2012)

International Journal of Emerging Technology and Advanced Engineering Website:  (ISSN , Volume 2, Issue 6, June 2012) Website: www.ijetae.com (ISSN 225-2459, Volume 2, Issue 6, June 12) Comparison of, and Modulation Formats for High Bit Rate WDM-PON System using AWG Malti 1, Meenakshi Sharma 2, Anu Sheetal 3 1 Sai Institute

More information

Optical fiber-fault surveillance for passive optical networks in S-band operation window

Optical fiber-fault surveillance for passive optical networks in S-band operation window Optical fiber-fault surveillance for passive optical networks in S-band operation window Chien-Hung Yeh 1 and Sien Chi 2,3 1 Transmission System Department, Computer and Communications Research Laboratories,

More information

Performance Analysis of Optical Time Division Multiplexing Using RZ Pulse Generator

Performance Analysis of Optical Time Division Multiplexing Using RZ Pulse Generator Available Online at www.ijcsmc.com International Journal of Computer Science and Mobile Computing A Monthly Journal of Computer Science and Information Technology IJCSMC, Vol. 4, Issue. 10, October 2015,

More information

Evaluation of Gain and Quality Factor of an Erbium Doped Fiber Post-, Pre- and in-line Amplifier for GPON

Evaluation of Gain and Quality Factor of an Erbium Doped Fiber Post-, Pre- and in-line Amplifier for GPON Evaluation of Gain and Quality Factor of an Erbium Doped Fiber Post-, Pre- and in-line Amplifier for GPON Bentahar Attaouia Department of electronic University of Djillali Liabès Sidi Bel-Abbès, Algeria

More information

Chirped Bragg Grating Dispersion Compensation in Dense Wavelength Division Multiplexing Optical Long-Haul Networks

Chirped Bragg Grating Dispersion Compensation in Dense Wavelength Division Multiplexing Optical Long-Haul Networks 363 Chirped Bragg Grating Dispersion Compensation in Dense Wavelength Division Multiplexing Optical Long-Haul Networks CHAOUI Fahd 3, HAJAJI Anas 1, AGHZOUT Otman 2,4, CHAKKOUR Mounia 3, EL YAKHLOUFI Mounir

More information

Dr. Monir Hossen ECE, KUET

Dr. Monir Hossen ECE, KUET Dr. Monir Hossen ECE, KUET 1 Outlines of the Class Principles of WDM DWDM, CWDM, Bidirectional WDM Components of WDM AWG, filter Problems with WDM Four-wave mixing Stimulated Brillouin scattering WDM Network

More information

Annex 91A Coexistence of 1 Gb/s (symmetric), 10 Gb/s (symmetric) and 10/1 Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs)

Annex 91A Coexistence of 1 Gb/s (symmetric), 10 Gb/s (symmetric) and 10/1 Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs) Annex 91A Coexistence of 1 Gb/s (symmetric), 10 Gb/s (symmetric) and 10/1 Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs) 91A.1 Overview This clause provides information on building Ethernet

More information

Wavelength-division-multiplexed passive optical network (WDM-PON) technologies for broadband access: a review [Invited]

Wavelength-division-multiplexed passive optical network (WDM-PON) technologies for broadband access: a review [Invited] Wavelength-division-multiplexed passive optical network (WDM-PON) technologies for broadband access: a review [Invited] Amitabha Banerjee Department of Computer Science, University of California, Davis,

More information

40Gb/s Optical Transmission System Testbed

40Gb/s Optical Transmission System Testbed The University of Kansas Technical Report 40Gb/s Optical Transmission System Testbed Ron Hui, Sen Zhang, Ashvini Ganesh, Chris Allen and Ken Demarest ITTC-FY2004-TR-22738-01 January 2004 Sponsor: Sprint

More information

Physics 464/564. Research Project: AWG Technology in DWDM System. By: Andre Y. Ma Date:

Physics 464/564. Research Project: AWG Technology in DWDM System. By: Andre Y. Ma Date: Physics 464/564 Research Project: AWG Technology in DWDM System By: Andre Y. Ma Date: 2-28-03 Abstract: The ever-increasing demand for bandwidth poses a serious limitation for the existing telecommunication

More information

Coexistence of 10G-PON and GPON Reach Extension to 50-Km with Entirely Passive Fiber Plant

Coexistence of 10G-PON and GPON Reach Extension to 50-Km with Entirely Passive Fiber Plant e-issn 2455 1392 Volume 2 Issue 11, November 2016 pp. 12 19 Scientific Journal Impact Factor : 3.468 http://www.ijcter.com Coexistence of 10G-PON and GPON Reach Extension to 50-Km with Entirely Passive

More information

High Speed TWDM PON - A Review

High Speed TWDM PON - A Review High Speed TWDM PON - A Review Sonakshi PG Research Scholar Electronics and Communication Engineering Dept. PEC University of technology, Chandigarh sonakshi.tulsi@gmail.com Divya Dhawan Assistant Professor

More information

25G TDM PON overview. Ed Harstead, member Fixed Networks CTO Dora van Veen, Vincent Houtsma, and Peter Vetter, Bell Labs

25G TDM PON overview. Ed Harstead, member Fixed Networks CTO Dora van Veen, Vincent Houtsma, and Peter Vetter, Bell Labs 25G TDM PON overview Ed Harstead, member Fixed Networks CTO Dora van Veen, Vincent Houtsma, and Peter Vetter, Bell Labs September 2015 1 Downstream capacity (Mb/s) Background: Evolution of TDM PON bit

More information

Investigation of Influence of Mixed

Investigation of Influence of Mixed http://dx.doi.org/10.5755/j01.eie.23.2.18003 ELEKTRONIKA IR ELEKTROTECHNIKA, ISSN 1392-1215, VOL. 23, NO. 2, 2017 Investigation of Influence of Mixed Configurations on Performance of WDM-PON Inna Kurbatska

More information

Performance Evaluation of Hybrid (Raman+EDFA) Optical Amplifiers in Dense Wavelength Division Multiplexed Optical Transmission System

Performance Evaluation of Hybrid (Raman+EDFA) Optical Amplifiers in Dense Wavelength Division Multiplexed Optical Transmission System Performance Evaluation of Hybrid (Raman+EDFA) Optical Amplifiers in Dense Wavelength Division Multiplexed Optical Transmission System Gagandeep Singh Walia 1, Kulwinder Singh 2, Manjit Singh Bhamrah 3

More information

TRANSMISSION OF NG-PON FOR LONG HAUL NETWORKS USING HYBRID AMPLIFIER

TRANSMISSION OF NG-PON FOR LONG HAUL NETWORKS USING HYBRID AMPLIFIER RESEARCH ARTICLE OPEN ACCESS TRANSMISSION OF NG-PON FOR LONG HAUL NETWORKS USING HYBRID AMPLIFIER Karthick.J Sanjai.V Sivakumar.K Syed Feroze hussain.s UG Scholar UG Scholar UG Scholar Assistant Professor

More information

Enhanced 10 Gb/s operations of directly modulated reflective semiconductor optical amplifiers without electronic equalization

Enhanced 10 Gb/s operations of directly modulated reflective semiconductor optical amplifiers without electronic equalization Enhanced Gb/s operations of directly modulated reflective semiconductor optical amplifiers without electronic equalization M. Presi, 1, A. Chiuchiarelli, 1 R. Corsini, 1 P. Choudury, 1 F. Bottoni, 1, L.

More information

1.25 Gb/s Broadcast Signal Transmission in WDM-PON Based on Mutually Injected Fabry-Perot Laser Diodes

1.25 Gb/s Broadcast Signal Transmission in WDM-PON Based on Mutually Injected Fabry-Perot Laser Diodes Journal of the Optical Society of Korea Vol. 16, No. 2, June 2012, pp. 101-106 DOI: http://dx.doi.org/10.3807/josk.2012.16.2.101 1.25 Gb/s Broadcast Signal Transmission in WDM-PON Based on Mutually Injected

More information

Improved Analysis of Hybrid Optical Amplifier in CWDM System

Improved Analysis of Hybrid Optical Amplifier in CWDM System Improved Analysis of Hybrid Optical Amplifier in CWDM System 1 Bandana Mallick, 2 Reeta Kumari, 3 Anirban Mukherjee, 4 Kunwar Parakram 1. Asst Proffesor in Dept. of ECE, GIET Gunupur 2, 3,4. Student in

More information

Development of Small Optical Transceiver for 10G-EPON

Development of Small Optical Transceiver for 10G-EPON INFORMATION & COMMUNICATIONS Development of Small Optical Transceiver for Tomoyuki Funada*, Shuitsu Yuda, akihito IwaTa, naruto Tanaka, Hidemi Sone, daisuke umeda, Yasuyuki kawanishi and Yuuya Tanaka As

More information

CHAPTER 4 RESULTS. 4.1 Introduction

CHAPTER 4 RESULTS. 4.1 Introduction CHAPTER 4 RESULTS 4.1 Introduction In this chapter focus are given more on WDM system. The results which are obtained mainly from the simulation work are presented. In simulation analysis, the study will

More information

Cisco s CLEC Networkers Power Session

Cisco s CLEC Networkers Power Session Course Number Presentation_ID 1 Cisco s CLEC Networkers Power Session Session 2 The Business Case for ONS 15800 3 What s Driving the Demand? Data Voice 4 What s Driving the Demand? Internet 36,700,000

More information

Performance Evaluation of 32 Channel DWDM System Using Dispersion Compensation Unit at Different Bit Rates

Performance Evaluation of 32 Channel DWDM System Using Dispersion Compensation Unit at Different Bit Rates Performance Evaluation of 32 Channel DWDM System Using Dispersion Compensation Unit at Different Bit Rates Simarpreet Kaur Gill 1, Gurinder Kaur 2 1Mtech Student, ECE Department, Rayat- Bahra University,

More information

Performance Investigation of RAMAN-EDFA HOA for DWDM System (Received 17 September, 2016 Accepted 02 October, 2016)

Performance Investigation of RAMAN-EDFA HOA for DWDM System (Received 17 September, 2016 Accepted 02 October, 2016) Performance Investigation of RAMAN-EDFA HOA for DWDM System (Received 17 September, 2016 Accepted 02 October, 2016) ABSTRACT Neha Thakral Research Scholar, DAVIET, Jalandhar nthakral9@gmail.com Earlier

More information

SCTE. San Diego Chapter March 19, 2014

SCTE. San Diego Chapter March 19, 2014 SCTE San Diego Chapter March 19, 2014 RFOG WHAT IS RFOG? WHY AND WHERE IS THIS TECHNOLOGY A CONSIDERATION? RFoG could be considered the deepest fiber version of HFC RFoG pushes fiber to the side of the

More information

Implementation of Future Generation Agile Gigabits Passive Optical Network

Implementation of Future Generation Agile Gigabits Passive Optical Network Implementation of Future Generation Agile Gigabits Passive Optical Network Yaping Zhang Department of Electrical and Electronic Engineering, The University of Nottingham Ningbo China 199 Taikang East Road,

More information

SIMULATIVE INVESTIGATION OF SINGLE-TONE ROF SYSTEM USING VARIOUS DUOBINARY MODULATION FORMATS

SIMULATIVE INVESTIGATION OF SINGLE-TONE ROF SYSTEM USING VARIOUS DUOBINARY MODULATION FORMATS SIMULATIVE INVESTIGATION OF SINGLE-TONE ROF SYSTEM USING VARIOUS DUOBINARY MODULATION FORMATS Namita Kathpal 1 and Amit Kumar Garg 2 1,2 Department of Electronics & Communication Engineering, Deenbandhu

More information

Property improvement of flat-top 50 GHz-88 ch arrayed waveguide grating using phase correction waveguides

Property improvement of flat-top 50 GHz-88 ch arrayed waveguide grating using phase correction waveguides Property improvement of flat-top 50 GHz-88 ch arrayed waveguide grating using phase correction waveguides Kazutaka Nara 1a) and Noritaka Matsubara 2 1 FITEL Photonics Laboratory, Furukawa Electric Co.,

More information

UNIT - 7 WDM CONCEPTS AND COMPONENTS

UNIT - 7 WDM CONCEPTS AND COMPONENTS UNIT - 7 LECTURE-1 WDM CONCEPTS AND COMPONENTS WDM concepts, overview of WDM operation principles, WDM standards, Mach-Zehender interferometer, multiplexer, Isolators and circulators, direct thin film

More information

Coexistence of 1 Gb/s (symmetric), 10 Gb/s (symmetric) and 10/1 Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs)

Coexistence of 1 Gb/s (symmetric), 10 Gb/s (symmetric) and 10/1 Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs) Last modified: April 0 Amendment to IEEE Std 0.-0 Annex A (informative) Coexistence of Gb/s (symmetric), Gb/s (symmetric) and / Gb/s (asymmetric) Ethernet Passive Optical Networks (EPONs) A. Overview This

More information

Wavelength Multiplexing. The Target

Wavelength Multiplexing. The Target The Target Design a MAN* like fiber network for high data transmission rates. The network is partial below sea level and difficult to install and to maintain. Such a fiber network demands an optimized

More information

All-VCSEL based digital coherent detection link for multi Gbit/s WDM passive optical networks

All-VCSEL based digital coherent detection link for multi Gbit/s WDM passive optical networks All-VCSEL based digital coherent detection link for multi Gbit/s WDM passive optical networks Roberto Rodes, 1,* Jesper Bevensee Jensen, 1 Darko Zibar, 1 Christian Neumeyr, 2 Enno Roenneberg, 2 Juergen

More information

Hybrid Integration Technology of Silicon Optical Waveguide and Electronic Circuit

Hybrid Integration Technology of Silicon Optical Waveguide and Electronic Circuit Hybrid Integration Technology of Silicon Optical Waveguide and Electronic Circuit Daisuke Shimura Kyoko Kotani Hiroyuki Takahashi Hideaki Okayama Hiroki Yaegashi Due to the proliferation of broadband services

More information

A Long Haul Carrier Generated Ultra Dense Passive Optical Network Incorporating Low Cost VCSEL

A Long Haul Carrier Generated Ultra Dense Passive Optical Network Incorporating Low Cost VCSEL A Long Haul Carrier Generated Ultra Dense Passive Optical Network Incorporating Low Cost VCSEL 1 Manpreet kaur, 2 Er. Dipti Bansal 1 Student, 2 Assistant professor Punjabi university, Patiala Abstract:

More information

Optical Wavelength Interleaving

Optical Wavelength Interleaving Advances in Wireless and Mobile Communications. ISSN 0973-6972 Volume 10, Number 3 (2017), pp. 511-517 Research India Publications http://www.ripublication.com Optical Wavelength Interleaving Shivinder

More information

Performance Limitations of WDM Optical Transmission System Due to Cross-Phase Modulation in Presence of Chromatic Dispersion

Performance Limitations of WDM Optical Transmission System Due to Cross-Phase Modulation in Presence of Chromatic Dispersion Performance Limitations of WDM Optical Transmission System Due to Cross-Phase Modulation in Presence of Chromatic Dispersion M. A. Khayer Azad and M. S. Islam Institute of Information and Communication

More information

32-Channel DWDM System Design and Simulation by Using EDFA with DCF and Raman Amplifiers

32-Channel DWDM System Design and Simulation by Using EDFA with DCF and Raman Amplifiers 2012 International Conference on Information and Computer Networks (ICICN 2012) IPCSIT vol. 27 (2012) (2012) IACSIT Press, Singapore 32-Channel DWDM System Design and Simulation by Using EDFA with DCF

More information

80 GBPS DOWNSTREAM TRANSMISSION USING DQPSK AND 40 GBPS UPSTREAM TRANSMISSION USING IRZ/OOK MODULATION IN BIDIRECTIONAL WDM-PON

80 GBPS DOWNSTREAM TRANSMISSION USING DQPSK AND 40 GBPS UPSTREAM TRANSMISSION USING IRZ/OOK MODULATION IN BIDIRECTIONAL WDM-PON International Journal of Electronics and Communication Engineering and Technology (IJECET) Volume 7, Issue 6, November-December 2016, pp. 65 71, Article ID: IJECET_07_06_009 Available online at http://www.iaeme.com/ijecet/issues.asp?jtype=ijecet&vtype=7&itype=6

More information

International Journal of Advanced Research in Computer Science and Software Engineering

International Journal of Advanced Research in Computer Science and Software Engineering ISSN: 2277 128X International Journal of Advanced Research in Computer Science and Software Engineering Research Paper Available online at: Performance Analysis of WDM/SCM System Using EDFA Mukesh Kumar

More information

Analysis of 16 Channel WDM FSO Communication System using MIMO Structure under Different Atmospheric Conditions

Analysis of 16 Channel WDM FSO Communication System using MIMO Structure under Different Atmospheric Conditions Analysis of 16 Channel WDM FSO Communication System using MIMO Structure under Different Atmospheric Conditions Ashish Sharma 1, Sandeep Kumar Toshniwal 2 1 P. G. Scholar (Electronics & Comm.), Kautilya

More information

Enhancing Optical Network Capacity using DWDM System and Dispersion Compansating Technique

Enhancing Optical Network Capacity using DWDM System and Dispersion Compansating Technique ISSN (Print) : 2320 3765 ISSN (Online): 2278 8875 International Journal of Advanced Research in Electrical, Electronics and Instrumentation Engineering Vol. 6, Issue 12, December 2017 Enhancing Optical

More information

CWDM Cisco CWDM wavelengths (nm)

CWDM Cisco CWDM wavelengths (nm) Cisco Enhanced Wavelength Division Multiplexing Product Line The Cisco enhanced wavelength-division multiplexing (EWDM) product line allows users to scale the speed and capacity of the services offered

More information

WDM. Coarse WDM. Nortel's WDM System

WDM. Coarse WDM. Nortel's WDM System WDM wavelength-division multiplexing (WDM) is a technology which multiplexes a number of optical carrier signals onto a single optical fiber by using different wavelengths (i.e. colors) of laser light.

More information

20-Gb/s Transmission Over 25-km in Wavelength Division Multiplexing Passive Optical Network with Centralized Light Source

20-Gb/s Transmission Over 25-km in Wavelength Division Multiplexing Passive Optical Network with Centralized Light Source Copyright 2017 by American Scientific Publishers All rights reserved. Printed in the United States of America Journal of Nanoelectronics and Optoelectronics Vol. 12, pp. 1 5, 2017 www.aspbs.com/jno ARTICLE

More information

ANALYSIS OF FWM POWER AND EFFICIENCY IN DWDM SYSTEMS BASED ON CHROMATIC DISPERSION AND CHANNEL SPACING

ANALYSIS OF FWM POWER AND EFFICIENCY IN DWDM SYSTEMS BASED ON CHROMATIC DISPERSION AND CHANNEL SPACING ANALYSIS OF FWM POWER AND EFFICIENCY IN DWDM SYSTEMS BASED ON CHROMATIC DISPERSION AND CHANNEL SPACING S Sugumaran 1, Manu Agarwal 2, P Arulmozhivarman 3 School of Electronics Engineering, VIT University,

More information

Study of Multiwavelength Fiber Laser in a Highly Nonlinear Fiber

Study of Multiwavelength Fiber Laser in a Highly Nonlinear Fiber Study of Multiwavelength Fiber Laser in a Highly Nonlinear Fiber I. H. M. Nadzar 1 and N. A.Awang 1* 1 Faculty of Science, Technology and Human Development, Universiti Tun Hussein Onn Malaysia, Johor,

More information

Downloaded on T09:02:33Z. Title. Analysis and optimisation of semiconductor reflective modulators for optical networks.

Downloaded on T09:02:33Z. Title. Analysis and optimisation of semiconductor reflective modulators for optical networks. Title Author(s) Analysis and optimisation of semiconductor reflective modulators for optical networks Naughton, Alan Joseph Publication date 2014 Original citation Type of publication Rights Naughton,

More information

Title. Author(s)Saitoh, Fumiya; Saitoh, Kunimasa; Koshiba, Masanori. CitationOptics Express, 18(5): Issue Date Doc URL.

Title. Author(s)Saitoh, Fumiya; Saitoh, Kunimasa; Koshiba, Masanori. CitationOptics Express, 18(5): Issue Date Doc URL. Title A design method of a fiber-based mode multi/demultip Author(s)Saitoh, Fumiya; Saitoh, Kunimasa; Koshiba, Masanori CitationOptics Express, 18(5): 4709-4716 Issue Date 2010-03-01 Doc URL http://hdl.handle.net/2115/46825

More information

A NEW APPROACH TO DESIGN DIGITALLY TUNABLE OPTICAL FILTER SYSTEM FOR DWDM OPTICAL NETWORKS

A NEW APPROACH TO DESIGN DIGITALLY TUNABLE OPTICAL FILTER SYSTEM FOR DWDM OPTICAL NETWORKS Progress In Electromagnetics Research M, Vol. 11, 213 223, 2010 A NEW APPROACH TO DESIGN DIGITALLY TUNABLE OPTICAL FILTER SYSTEM FOR DWDM OPTICAL NETWORKS A. Banerjee Department of Electronics and Communication

More information

Performance Analysis of Dwdm System With Different Modulation Techique And Photodiode

Performance Analysis of Dwdm System With Different Modulation Techique And Photodiode The International Journal Of Engineering And Science (IJES) Volume 2 Issue 7 Pages 07-11 2013 ISSN(e): 2319 1813 ISSN(p): 2319 1805 Performance Analysis of Dwdm System With Different Modulation Techique

More information

Dynamic gain-tilt compensation using electronic variable optical attenuators and a thin film filter spectral tilt monitor

Dynamic gain-tilt compensation using electronic variable optical attenuators and a thin film filter spectral tilt monitor Dynamic gain-tilt compensation using electronic variable optical attenuators and a thin film filter spectral tilt monitor P. S. Chan, C. Y. Chow, and H. K. Tsang Department of Electronic Engineering, The

More information

IEEE July 2001 Plenary Meeting Portland, OR Robert S. Carlisle Sr. Market Development Engineer

IEEE July 2001 Plenary Meeting Portland, OR Robert S. Carlisle Sr. Market Development Engineer Ethernet PON Fiber Considerations IEEE July 2001 Plenary Meeting Portland, OR Robert S. Carlisle Sr. Market Development Engineer Special Thanks to Contributors Kendall Musgrove - Sr. Market Development

More information

UNIVERSITY OF TORONTO FACULTY OF APPLIED SCIENCE AND ENGINEERING. FINAL EXAMINATION, April 2017 DURATION: 2.5 hours

UNIVERSITY OF TORONTO FACULTY OF APPLIED SCIENCE AND ENGINEERING. FINAL EXAMINATION, April 2017 DURATION: 2.5 hours UNIVERSITY OF TORONTO FACULTY OF APPLIED SCIENCE AND ENGINEERING ECE4691-111 S - FINAL EXAMINATION, April 2017 DURATION: 2.5 hours Optical Communication and Networks Calculator Type: 2 Exam Type: X Examiner:

More information

Super-PON. Scale Fully Passive Optical Access Networks to Longer Reaches and to a Significantly Higher Number of Subscribers

Super-PON. Scale Fully Passive Optical Access Networks to Longer Reaches and to a Significantly Higher Number of Subscribers Super-PON Scale Fully Passive Optical Access Networks to Longer Reaches and to a Significantly Higher Number of Subscribers Claudio DeSanti Liang Du Cedric Lam Joy Jiang Agenda Super-PON Idea Why Super-PON?

More information

SOA pre-amplified upstream signal power in 100G EPON

SOA pre-amplified upstream signal power in 100G EPON SOA pre-amplified upstream signal power in 100G EPON Hanhyub Lee, and Hwan Seok Chung IEEE P802.3ca 100G-EPON Task Force May 22-26, 2017 New Orleans, Louisiana, USA 100G EPON OLT must use a pre-amplifer

More information

Multiplexing. Chapter 8. Frequency Division Multiplexing Diagram. Frequency Division Multiplexing. Multiplexing

Multiplexing. Chapter 8. Frequency Division Multiplexing Diagram. Frequency Division Multiplexing. Multiplexing Multiplexing Chapter 8 Multiplexing Frequency Division Multiplexing FDM Useful bandwidth of medium exceeds required bandwidth of channel Each signal is modulated to a different carrier frequency Carrier

More information

Design of athermal arrayed waveguide grating using silica/polymer hybrid materials

Design of athermal arrayed waveguide grating using silica/polymer hybrid materials Optica Applicata, Vol. XXXVII, No. 3, 27 Design of athermal arrayed waveguide grating using silica/polymer hybrid materials DE-LU LI, CHUN-SHENG MA *, ZHENG-KUN QIN, HAI-MING ZHANG, DA-MING ZHANG, SHI-YONG

More information

Optical Transport Tutorial

Optical Transport Tutorial Optical Transport Tutorial 4 February 2015 2015 OpticalCloudInfra Proprietary 1 Content Optical Transport Basics Assessment of Optical Communication Quality Bit Error Rate and Q Factor Wavelength Division

More information

Simulative Analysis of 40 Gbps DWDM System Using Combination of Hybrid Modulators and Optical Filters for Suppression of Four-Wave Mixing

Simulative Analysis of 40 Gbps DWDM System Using Combination of Hybrid Modulators and Optical Filters for Suppression of Four-Wave Mixing Vol.9, No.7 (2016), pp.213-220 http://dx.doi.org/10.14257/ijsip.2016.9.7.18 Simulative Analysis of 40 Gbps DWDM System Using Combination of Hybrid Modulators and Optical Filters for Suppression of Four-Wave

More information

11.1 Gbit/s Pluggable Small Form Factor DWDM Optical Transceiver Module

11.1 Gbit/s Pluggable Small Form Factor DWDM Optical Transceiver Module INFORMATION & COMMUNICATIONS 11.1 Gbit/s Pluggable Small Form Factor DWDM Transceiver Module Yoji SHIMADA*, Shingo INOUE, Shimako ANZAI, Hiroshi KAWAMURA, Shogo AMARI and Kenji OTOBE We have developed

More information

Design of Ultra High Capacity DWDM System with Different Modulation Formats

Design of Ultra High Capacity DWDM System with Different Modulation Formats Design of Ultra High Capacity DWDM System with Different Modulation Formats A. Nandhini 1, K. Gokulakrishnan 2 1 PG Scholar, Department of Electronics & Communication Engineering, Regional Center, Anna

More information

Long Haul Communication using Hybrid Optical Amplifiers.

Long Haul Communication using Hybrid Optical Amplifiers. Long Haul Communication using Hybrid Optical Amplifiers. Kakumani Lakshmi Venkatesh, Sana Karthik, Sannithi Hitesh Kumar Vellore Institute of Technology Vellore, India Abstract In this paper the authors

More information

Available online at ScienceDirect. Procedia Computer Science 93 (2016 )

Available online at   ScienceDirect. Procedia Computer Science 93 (2016 ) Available online at www.sciencedirect.com ScienceDirect Procedia Computer Science 93 (016 ) 647 654 6th International Conference On Advances In Computing & Communications, ICACC 016, 6-8 September 016,

More information

NG-PON2 Optical Components Update. Hal Roberts System Architect

NG-PON2 Optical Components Update. Hal Roberts System Architect NG-PON2 Optical Components Update Hal Roberts System Architect Agenda NG-PON2 Optical Challenges ONU Optics Challenges OLT Optics Challenges NG-PON2 Solutions for Optics ONU Optics OLT Optics Discrete

More information

DWDM millimeter-wave radio-on-fiber systems

DWDM millimeter-wave radio-on-fiber systems DWDM millimeter-wave radio-on-fiber systems Hiroyuki Toda a, Toshiaki Kuri b, and Ken-ichi Kitayama c a Faculty of Engineering, Doshisha University, Kyotanabe, Kyoto, Japan 610-0321; b National Institute

More information